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Published on: April 6, 2017
Lipid-based particle engineering via spray-drying for targeted delivery of antibiotics to the lung
Carolina Corzo1, Djana Crvenjak1, Kamen Sotirov1
1Research Center Pharmaceutical Engineering GmbH, Graz, Austria; Institute of Pharmaceutical Sciences, Department of Pharmaceutical Technology & Biopharmacy, University of Graz, Graz, Austria.
Abstract:
Pulmonary delivery of antibiotics for the treatment of tuberculosis provides several benefits compared to conventional oral and parenteral administration. API-loaded particles delivered directly to alveolar macrophages, where Mycobacterium tuberculosis resides, can reduce the required dose and decrease the severe side effects of conventional treatment. In this work, lipid-microparticles loaded with rifampicin were engineered via spray-drying to be administered as a carrier-free dry powder for inhalation. Although, it is well-known that spray-drying of lipid-based excipients is strongly limited, a completely lipid-based formulation using diglycerol full ester of behenic acid was produced. The solid state of the lipid, providing high melting temperature, absence of polymorphism and monophasic crystallization, led to high yield of spray-dried particles (83%). Inhalable particles of mass median aerodynamic diameter of 2.36 µm, median geometric size of 2.05 µm, and negative surface (-50.03 mV) were engineered. Such attributes were defined for deep lung deposition and targeted delivery of antibiotics to alveolar macrophages. Superior aerodynamic performance as carrier-free DPI was associated to a high fine particle fraction of 79.5 %. No in vitro cytotoxic effects were found after exposing epithelial cell lines and alveolar macrophages. In vitro uptake of particles into alveolar macrophages indicated the efficiency of their targeted delivery. The use of highly processable and safe lipid-based excipients for particle engineering via spray-drying can extend the availability of materials for functionalized applications for pulmonary delivery.
Insights
Pulmonary delivery of rifampicin using lipid-based microparticles offers a targeted tuberculosis treatment. This approach enhances drug delivery to lung macrophages, reducing side effects and improving therapeutic efficacy.
Area of Science:
- Pharmaceutical Sciences
- Drug Delivery
- Nanotechnology
Background:
- Pulmonary antibiotic delivery for tuberculosis targets Mycobacterium tuberculosis in alveolar macrophages.
- This method potentially reduces dosage and severe side effects associated with oral/parenteral administration.
Purpose of the Study:
- To engineer rifampicin-loaded lipid-microparticles for inhalation as a carrier-free dry powder.
- To overcome limitations in spray-drying lipid-based excipients for pulmonary drug delivery.
Main Methods:
- Spray-drying was used to produce lipid-microparticles using diglycerol full ester of behenic acid.
- Particle characteristics including aerodynamic diameter, geometric size, and surface charge were analyzed.
- In vitro cytotoxicity and cellular uptake studies were performed using epithelial cell lines and alveolar macrophages.
Main Results:
- High yield (83%) of spray-dried, carrier-free lipid-microparticles was achieved.
- Particles exhibited inhalable characteristics (MMAD 2.36 µm, GSD 2.05 µm) suitable for deep lung deposition.
- High fine particle fraction (79.5%) and no observed in vitro cytotoxicity were reported.
- Efficient in vitro uptake by alveolar macrophages confirmed targeted delivery.
Conclusions:
- Completely lipid-based microparticles for pulmonary delivery of rifampicin were successfully engineered via spray-drying.
- The engineered particles demonstrated favorable characteristics for targeted delivery to alveolar macrophages.
- This approach highlights the potential of spray-dried lipid-based excipients for advanced pulmonary drug delivery applications.
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